Synthesis and Fabrication of Collagen-Coated Ostholamide Electrospun Nanofiber Scaffold for Wound Healing

被引:111
作者
Kandhasamy, Subramani [1 ]
Perumal, Sathiamurthi [2 ]
Madhan, Balaraman [2 ]
Umamaheswari, Narayanan [1 ]
Banday, Javid Ahmad [3 ]
Perumal, Paramasivan Thirumalai [1 ]
Santhanakrishnan, Vichangal Pridiuldi [4 ]
机构
[1] CSIR Cent Leather Res Inst, Organ Chem Div, Chennai 600020, Tamil Nadu, India
[2] CSIR Cent Leather Res Inst, CHORD, AcSIR, Chennai 600020, Tamil Nadu, India
[3] Natl Inst Technol, Dept Chem, Srinagar, Jammu & Kashmir, India
[4] Tamil Nadu Agr Univ, Ctr Plant Mol Biol & Biotechnol, Dept Plant Biotechnol, Coimbatore, Tamil Nadu, India
关键词
ostholamide; collagen; wound healing; fibroblast; electrospun nanofibers; BIOLOGICAL EVALUATION; COMPOSITE SCAFFOLD; NATURAL-PRODUCTS; FIBER DIAMETER; ACID; SKIN; DERIVATIVES; PRANGOS; CELLS; BIOCOMPATIBILITY;
D O I
10.1021/acsami.6b16488
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
A novel scaffold for effective wound healing treatment was developed utilizing natural product bearing collagen based biocompatible electrospun nanofibers. Initially, ostholamide (OSA) was synthesized from osthole (a natural coumarin), characterized by H-1, C-13, DEPT-135 NMR, ESI-MS, and FT-IR spectroscopy analysis. OSA was incorporated into polyhydroxybutyrate (PHB) and gelatin (GEL), which serve as templates for electrospun nanofibers. The coating of OSA-PHB-GEL nanofibers with collagen resulted in PHB-GEL-OSA-COL nanofibrous scaffold which mimics extracellular matrix and serves as an effective biomaterial for tissue engineering applications, especially for wound healing. PHB-GEL-OSA-COL, along with PHB-GEL-OSA and collagen film (COLF), was characterized in vitro and in vivo to determine its efficacy. The developed PHB-GEL-OSA-COL nanofibers posed an impressive mechanical stability, an essential requirement for wound healing. The presence of OSA had contributed to antimicrobial efficacy. These scaffolds exhibited efficient antibacterial activity against common wound pathogens, Pseudomonas aeruginosa (P. aeruginosa) and Staphylococcus aureus (S. aureus). The zones of inhibition were observed to be 14 22 and 10 2 mm, respectively. It was observed that nanofibrous scaffold had the ability to release OSA in a controlled manner, and hence, OSA would be present at the site of application and exhibit bioactivity in a sustained manner. PHB-GEL-OSA-COL nanofiber was determined to be stable against enzymatic degradation, which is the most important parameter for promoting proliferation of cells contributing to repair and remodeling of tissues during wound healing applications. As hypothesized, PHB-GEL-OSA-COL was observed to imbibe excellent cytocompatibility, which was determined using NIH 3T3 fibroblast cell proliferation studies. PHB-GEL-OSA-COL exhibited excellent wound healing efficacy which was confirmed using full thickness excision wound model in Wistar rats. The rats treated with PHB-GEL-OSA-COL nanofibrous scaffold displayed enhanced healing when compared to untreated control. Both in vitro and in vivo analysis of PHB-GEL-OSA-COL presents a strong case of therapeutic biomaterial suiting wound repair and regeneration.
引用
收藏
页码:8556 / 8568
页数:13
相关论文
共 60 条
[1]   Effect of fiber diameter on spreading, proliferation, and differentiation of osteoblastic cells on electrospun poly(lactic acid) substrates [J].
Badami, AS ;
Kreke, MR ;
Thompson, MS ;
Riffle, JS ;
Goldstein, AS .
BIOMATERIALS, 2006, 27 (04) :596-606
[2]   Growth factors and cytokines in wound healing [J].
Barrientos, Stephan ;
Stojadinovic, Olivera ;
Golinko, Michael S. ;
Brem, Harold ;
Tomic-Canic, Marjana .
WOUND REPAIR AND REGENERATION, 2008, 16 (05) :585-601
[3]   Effect of Fiber Diameter and Alignment of Electrospun Polyurethane Meshes on Mesenchymal Progenitor Cells [J].
Bashur, Chris A. ;
Shaffer, Robyn D. ;
Dahlgren, Linda A. ;
Guelcher, Scott A. ;
Goldstein, Aaron S. .
TISSUE ENGINEERING PART A, 2009, 15 (09) :2435-2445
[4]   Trans-differentiation of human mesenchymal stem cells generates functional hepatospheres on poly(L-lactic acid)-co-poly(ε-caprolactone)/collagen nanofibrous scaffolds [J].
Bishi, Dillip Kumar ;
Mathapati, Santosh ;
Venugopal, Jayarama Reddy ;
Guhathakurta, Soma ;
Cherian, Kotturathu Mammen ;
Ramakrishna, Seeram ;
Verma, Rama Shanker .
JOURNAL OF MATERIALS CHEMISTRY B, 2013, 1 (32) :3972-3984
[5]   Coating electrospun collagen and gelatin fibers with perlecan domain I for increased growth factor binding [J].
Casper, Cheryl L. ;
Yang, Weidong ;
Farach-Carson, Mary C. ;
Rabolt, John F. .
BIOMACROMOLECULES, 2007, 8 (04) :1116-1123
[6]  
CHANDRAKASAN G, 1976, J BIOL CHEM, V251, P6062
[7]   Enhancement of light scattering and photoluminescence in electrospun polymer nanofibers [J].
Chang, Chun-Ching ;
Huang, Chun-Min ;
Chang, Yi-Hao ;
Kuo, Changshu .
OPTICS EXPRESS, 2010, 18 (13) :A174-A184
[8]   Isolation, Cytotoxicity Evaluation and HPLC-Quantification of the Chemical Constituents from Prangos pabularia [J].
Farooq, Saleem ;
Shakeel-u-Rehman ;
Dangroo, Nisar Ahmad ;
Priya, Dev ;
Banday, Javid Ahmad ;
Sangwan, Pyare Lal ;
Qurishi, Mushtaq Ahmad ;
Koul, Surrinder ;
Saxena, Ajit Kumar .
PLOS ONE, 2014, 9 (10)
[9]   Treating the chronic wound: A practical approach to the care of nonhealing wounds and wound care dressings [J].
Fonder, Margaret A. ;
Lazarus, Gerald S. ;
Cowan, David A. ;
Aronson-Cook, Barbara ;
Kohli, Angela R. ;
Mamelak, Adam J. .
JOURNAL OF THE AMERICAN ACADEMY OF DERMATOLOGY, 2008, 58 (02) :185-206
[10]   Current understanding of molecular and cellular mechanisms in fibroplasia and angiogenesis during acute wound healing [J].
Greaves, Nicholas S. ;
Ashcroft, Kevin J. ;
Baguneid, Mohamed ;
Bayat, Ardeshir .
JOURNAL OF DERMATOLOGICAL SCIENCE, 2013, 72 (03) :206-217